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On how atmospheric temperature affects the intensity of oxygen emissions in the framework of the Barth's mechanism. / Янковский, Валентин Андреевич.

в: Advances in Space Research, Том 67, № 3, JASR_15069, 01.02.2021, стр. 921-929.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

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@article{7a0cd0c82cdc4361a294b2a942d075c4,
title = "On how atmospheric temperature affects the intensity of oxygen emissions in the framework of the Barth's mechanism",
abstract = "The three-body recombination of oxygen atoms O + O + M → O 2(el) + M is the dominant process of oxygen excitation in the Earth's nightglow at altitudes of 85–110 km. The rate coefficient of this reaction, as well as the quantum yields of electronically excited products (O 2(el) in the electronic states: 5π g, A 3Σ u +, A′ 3Δ u, c 1Σ u +, b 1Σ g +, a 1Δ g, X 3Σ g -) depend on the gas kinetic temperature. In addition to the direct one-stage excitation channel of these levels of the O 2 molecule, the Barth's mechanism considers the two-stage energy transfer channel. In this channel, higher excited levels of the O 2 act as precursors for the excitation of the O( 1S) atom and the underlying electronic levels of the O 2. In this study, we use sensitivity analysis to consider the temperature dependence of the processes of excitation and quenching for each of the excited components. The analytical expressions are obtained for the sensitivity coefficients of the Volume Emission Rates depending on temperature for the green line of atomic oxygen O( 1S → 1D), the Herzberg I band O 2(A 3Σ u +→X 3Σ g -) and O 2 Atmospheric band O 2(b 1Σ g +,v '=0→X 3Σ g -, v ''=0). With the help of the sensitivity analysis performed in this work, we (a) confirm that the state O 2( 5π g), produced by the three-body recombination of atomic oxygen, is a precursor for the formation of O 2(b 1Σ g +), (b) estimate the quantum yield of the O 2(b 1Σ g +) state formed as a result of collisional reaction O 2( 5π g) with O 2, and (c) propose a method for determining a type of precursor for production of O( 1S) in the Barth's mechanism. ",
keywords = "ночное свечение атмосферы, зеленая линия кислорода, Атмосферная полоса кислорода, полоса Герцберга I, анализ чувствительности, механизм Барта, Barth's mechanism, Green line, Herzberg I band, Nightglow, O Atmospheric band, Sensitivity analysis, O2 Atmospheric band, NIGHTGLOW EMISSIONS, STATES, EXCITATION, O(S-1), CO2, HERZBERG BANDS, O-2, ATOMIC OXYGEN, GREEN LINE, O-2 Atmospheric band, ASSOCIATION",
author = "Янковский, {Валентин Андреевич}",
note = "Publisher Copyright: {\textcopyright} 2020 COSPAR Copyright: Copyright 2020 Elsevier B.V., All rights reserved.",
year = "2021",
month = feb,
day = "1",
doi = "10.1016/j.asr.2020.11.019",
language = "English",
volume = "67",
pages = "921--929",
journal = "Advances in Space Research",
issn = "0273-1177",
publisher = "Elsevier",
number = "3",

}

RIS

TY - JOUR

T1 - On how atmospheric temperature affects the intensity of oxygen emissions in the framework of the Barth's mechanism

AU - Янковский, Валентин Андреевич

N1 - Publisher Copyright: © 2020 COSPAR Copyright: Copyright 2020 Elsevier B.V., All rights reserved.

PY - 2021/2/1

Y1 - 2021/2/1

N2 - The three-body recombination of oxygen atoms O + O + M → O 2(el) + M is the dominant process of oxygen excitation in the Earth's nightglow at altitudes of 85–110 km. The rate coefficient of this reaction, as well as the quantum yields of electronically excited products (O 2(el) in the electronic states: 5π g, A 3Σ u +, A′ 3Δ u, c 1Σ u +, b 1Σ g +, a 1Δ g, X 3Σ g -) depend on the gas kinetic temperature. In addition to the direct one-stage excitation channel of these levels of the O 2 molecule, the Barth's mechanism considers the two-stage energy transfer channel. In this channel, higher excited levels of the O 2 act as precursors for the excitation of the O( 1S) atom and the underlying electronic levels of the O 2. In this study, we use sensitivity analysis to consider the temperature dependence of the processes of excitation and quenching for each of the excited components. The analytical expressions are obtained for the sensitivity coefficients of the Volume Emission Rates depending on temperature for the green line of atomic oxygen O( 1S → 1D), the Herzberg I band O 2(A 3Σ u +→X 3Σ g -) and O 2 Atmospheric band O 2(b 1Σ g +,v '=0→X 3Σ g -, v ''=0). With the help of the sensitivity analysis performed in this work, we (a) confirm that the state O 2( 5π g), produced by the three-body recombination of atomic oxygen, is a precursor for the formation of O 2(b 1Σ g +), (b) estimate the quantum yield of the O 2(b 1Σ g +) state formed as a result of collisional reaction O 2( 5π g) with O 2, and (c) propose a method for determining a type of precursor for production of O( 1S) in the Barth's mechanism.

AB - The three-body recombination of oxygen atoms O + O + M → O 2(el) + M is the dominant process of oxygen excitation in the Earth's nightglow at altitudes of 85–110 km. The rate coefficient of this reaction, as well as the quantum yields of electronically excited products (O 2(el) in the electronic states: 5π g, A 3Σ u +, A′ 3Δ u, c 1Σ u +, b 1Σ g +, a 1Δ g, X 3Σ g -) depend on the gas kinetic temperature. In addition to the direct one-stage excitation channel of these levels of the O 2 molecule, the Barth's mechanism considers the two-stage energy transfer channel. In this channel, higher excited levels of the O 2 act as precursors for the excitation of the O( 1S) atom and the underlying electronic levels of the O 2. In this study, we use sensitivity analysis to consider the temperature dependence of the processes of excitation and quenching for each of the excited components. The analytical expressions are obtained for the sensitivity coefficients of the Volume Emission Rates depending on temperature for the green line of atomic oxygen O( 1S → 1D), the Herzberg I band O 2(A 3Σ u +→X 3Σ g -) and O 2 Atmospheric band O 2(b 1Σ g +,v '=0→X 3Σ g -, v ''=0). With the help of the sensitivity analysis performed in this work, we (a) confirm that the state O 2( 5π g), produced by the three-body recombination of atomic oxygen, is a precursor for the formation of O 2(b 1Σ g +), (b) estimate the quantum yield of the O 2(b 1Σ g +) state formed as a result of collisional reaction O 2( 5π g) with O 2, and (c) propose a method for determining a type of precursor for production of O( 1S) in the Barth's mechanism.

KW - ночное свечение атмосферы

KW - зеленая линия кислорода

KW - Атмосферная полоса кислорода

KW - полоса Герцберга I

KW - анализ чувствительности

KW - механизм Барта

KW - Barth's mechanism

KW - Green line

KW - Herzberg I band

KW - Nightglow

KW - O Atmospheric band

KW - Sensitivity analysis

KW - O2 Atmospheric band

KW - NIGHTGLOW EMISSIONS

KW - STATES

KW - EXCITATION

KW - O(S-1)

KW - CO2

KW - HERZBERG BANDS

KW - O-2

KW - ATOMIC OXYGEN

KW - GREEN LINE

KW - O-2 Atmospheric band

KW - ASSOCIATION

UR - http://www.scopus.com/inward/record.url?scp=85098146119&partnerID=8YFLogxK

UR - https://www.mendeley.com/catalogue/02f0c534-fe31-3e48-b383-80687f39ad0f/

U2 - 10.1016/j.asr.2020.11.019

DO - 10.1016/j.asr.2020.11.019

M3 - Article

VL - 67

SP - 921

EP - 929

JO - Advances in Space Research

JF - Advances in Space Research

SN - 0273-1177

IS - 3

M1 - JASR_15069

ER -

ID: 71627279